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Ranking scientific articles based on bibliometric networks with a weighting scheme

机译:基于具有加权方案的圣训网络排名科学文章

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摘要

As the volume of scientific articles has grown rapidly over the last decades, evaluating their impact becomes critical for tracing valuable and significant research output. Many studies have proposed various ranking methods to estimate the prestige of academic papers using bibliometric methods. However, the weight of the links in bibliometric networks has been rarely considered for article ranking in existing literature. Such incomplete investigation in bibliometric methods could lead to biased ranking results. Therefore, a novel scientific article ranking algorithm, W-Rank, is introduced in this study proposing a weighting scheme. The scheme assigns weight to the links of citation network and authorship network by measuring citation relevance and author contribution. Combining the weighted bibliometric networks and a propagation algorithm, W-Rank is able to obtain article ranking results that are more reasonable than existing PageRank-based methods. Experiments are conducted on both arXiv hep-th and Microsoft Academic Graph datasets to verify the W-Rank and compare it with three renowned article ranking algorithms. Experimental results prove that the proposed weighting scheme assists the W-Rank in obtaining ranking results of higher accuracy and, in certain perspectives, outperforming the other algorithms. (C) 2019 Elsevier Ltd. All rights reserved.
机译:由于科学文章的数量在过去几十年中迅速发展,因此评估其影响对于追踪有价值和显着的研究产出至关重要。许多研究提出了各种排名方法,以使用圣训方法估计学术论文的声望。然而,对于现有文献中的物品排名,很少考虑在圣经测量网络中的链路的重量。这种在伯格计量方法中的这种不完整的调查可能导致偏置排名结果。因此,在该研究中介绍了一种新的科学文章,W-Rank,提出了加权方案。该方案通过测量引文相关性和作者贡献来为引文网络和作者网络链接分配权重。组合加权的Bibliometric网络和传播算法,W-ange能够获得比基于PageRank的方法更合理的物品排名结果。实验是在Arxiv Hepth和Microsoft学术图数据集中进行的,以验证W-Rank并将其与三个着名的文章排名算法进行比较。实验结果证明,所提出的加权方案有助于W-RANK获得更高准确性的排名结果,并且在某些角度上表现出其他算法。 (c)2019 Elsevier Ltd.保留所有权利。

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